Literature DB >> 11943818

Dividing precursor cells of the embryonic cortical ventricular zone have morphological and molecular characteristics of radial glia.

Stephen C Noctor1, Alexander C Flint, Tamily A Weissman, Winston S Wong, Brian K Clinton, Arnold R Kriegstein.   

Abstract

The embryonic ventricular zone (VZ) of the cerebral cortex contains migrating neurons, radial glial cells, and a large population of cycling progenitor cells that generate newborn neurons. The latter two cell classes have been assumed for some time to be distinct in both function and anatomy, but the cellular anatomy of the progenitor cell type has remained poorly defined. Several recent reports have raised doubts about the distinction between radial glial and precursor cells by demonstrating that radial glial cells are themselves neuronal progenitor cells (Malatesta et al., 2000; Hartfuss et al., 2001; Miyata et al., 2001; Noctor et al., 2001). This discovery raises the possibility that radial glia and the population of VZ progenitor cells may be one anatomical and functional cell class. Such a hypothesis predicts that throughout neurogenesis almost all mitotically active VZ cells and a substantial percentage of VZ cells overall are radial glia. We have therefore used various anatomical, immunohistochemical, and electrophysiological techniques to test these predictions. Our data demonstrate that the majority of VZ cells, and nearly all mitotically active VZ cells during neurogenesis, both have radial glial morphology and express radial glial markers. In addition, intracellular dye filling of electrophysiologically characterized progenitor cells in the VZ demonstrates that these cells have the morphology of radial glia. Because the vast majority cycling cells in the cortical VZ have characteristics of radial glia, the radial glial precursor cell may be responsible for both the production of newborn neurons and the guidance of daughter neurons to their destinations in the developing cortex.

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Year:  2002        PMID: 11943818      PMCID: PMC6757532          DOI: 20026299

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  75 in total

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Authors:  S C Noctor; S L Palmer; T Hasling; S L Juliano
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5.  CNS stem cells express a new class of intermediate filament protein.

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Authors:  M Götz; A Stoykova; P Gruss
Journal:  Neuron       Date:  1998-11       Impact factor: 17.173

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Authors:  X Qian; S K Goderie; Q Shen; J H Stern; S Temple
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  157 in total

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6.  The rho GTPase Rac1 is required for proliferation and survival of progenitors in the developing forebrain.

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Review 8.  Glial-neuronal interactions--implications for plasticity and drug addiction.

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9.  Generation of functional radial glial cells by embryonic and adult forebrain neural stem cells.

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10.  Central Nervous System and Vertebrae Development in Horses: a Chronological Study with Differential Temporal Expression of Nestin and GFAP.

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